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As is told here, the command [ -d FILE ] is used to check whether a file is directory.

However, when we miss the FILE parameter in the expression, it still returns true.

Why? How does shell interpret this expression then?

Example should be straightforward enough :)

$ [ -d /tmp ]
$ echo $?          # prints 0
$ [ -d ]
$ echo $?          # why prints 0 as well?
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2  
If you use quotes for directory ([ -d "" ]) it returns 1 as you would expect. –  Phylogenesis May 8 '13 at 14:44
    
@Phylogenesis thanks, actually I was reviewing a student's homework, and failed to explain why he should use "" here :) –  billybob May 8 '13 at 14:56
    
@billybob: That's easily explained even if you don't know how [ -d ] behaves. -d tests whether its argument is a directory. It doesn't make much sense to use -d without an argument. –  Keith Thompson May 8 '13 at 15:18

2 Answers 2

up vote 3 down vote accepted

It gets interpreted as [ -n -d ]. In other words, since you've only provided one argument -d gets treated as if it were any other string, and as you can read in the man page:

-n STRING
the length of STRING is nonzero

STRING
equivalent to -n STRING

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thanks for the man page! –  billybob May 8 '13 at 14:58

-d is only treated as an operator if [ receives 2 arguments. [ -d] is a one-argument form of the [ command, which exits with 0 if its single argument is non-null. Since -d is a non-null string, it exits 0.

[ -d "" ], on the other hand, is a two-argument form of the [ command, with the two arguments "-d" and "". Now the first argument is treated as a primary operator that acts on the second argument.

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I see, thank you! –  billybob May 8 '13 at 14:59

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